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Strain-Tuning Atomic Substitution in Two-Dimensional Atomic Crystals.

Honglai LiHongjun LiuLinwei ZhouXueping WuYuhao PanWei JiBiyuan ZhengQinglin ZhangXiujuan ZhuangXiaoli ZhuXiao WangXiangfeng DuanAnlian Pan
Published in: ACS nano (2018)
Atomic substitution offers an important route to achieve compositionally engineered two-dimensional nanostructures and their heterostructures. Despite the recent research progress, the fundamental understanding of the reaction mechanism has still remained unclear. Here, we reveal the atomic substitution mechanism of two-dimensional atomic layered materials. We found that the atomic substitution process depends on the varying lattice constant (strain) in monolayer crystals, dominated by two strain-tuning (self-promoted and self-limited) mechanisms using density functional theory calculations. These mechanisms were experimentally confirmed by the controllable realization of a graded substitution ratio in the monolayers by controlling the substitution temperature and time and further theoretically verified by kinetic Monte Carlo simulations. The strain-tuning atomic substitution processes are of general importance to other two-dimensional layered materials, which offers an interesting route for tailoring electronic and optical properties of these materials.
Keyphrases
  • density functional theory
  • monte carlo
  • electron microscopy
  • molecular dynamics
  • room temperature
  • gene expression
  • genome wide
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  • reduced graphene oxide